87
Views
0
CrossRef citations to date
0
Altmetric
Research Article

Improving the rheological characteristics of fly ash water slurry using aqueous extract of Diascorea hispida

, ORCID Icon, & ORCID Icon
Pages 336-347 | Received 24 May 2023, Accepted 10 Nov 2023, Published online: 27 Nov 2023

References

  • Ahmad, M. A., Z. Ali, and M. E. Haque. 2014. Fly ash slurry transportation: Indian scenario. Waste Technology 2 (1):1–7. doi:10.12777/wastech.2.1.1-7.
  • Behari, M., D. Das, and A. M. Mohanty. 2022. Influence of surfactant for stabilization and pipeline transportation of iron ore water slurry: A review. ACS Omega 7 (33):28708–22. doi:10.1021/acsomega.2c02534.
  • Behari, M., A. M. Mohanty, and D. Das. 2022. Influence of a plant-based surfactant on improving the stability of iron ore particles for dispersion and pipeline transportation. Powder Technology 407:117620. doi:10.1016/j.powtec.2022.117620.
  • Behari, M., A. M. Mohanty, and D. Das. 2023. Insights into the transport phenomena of iron ore particles by utilizing extracted bio-surfactant from acacia concinna (Willd.) dc. Journal of Molecular Liquids 382:121974. doi:10.1016/j.molliq.2023.121974.
  • Behera, U. n.d. Study of settling characteristics of fly ash flow behavior of fly ash slurries and water drainage from fly ash for hydraulic stowing in underground coal mines.
  • Behera, U., S. K. Das, D. P. Mishra, P. K. Parhi, and D. Das. 2021a. Enhancing the rheology and leachability of fly ash slurry using natural – synthetic mixed surfactant systemfor hydraulic stowing in underground mines. International Journal of Coal Preparation & Utilization 42 (12):3724–44. doi:10.1080/19392699.2021.1995374.
  • Behera, U., S. K. Das, D. P. Mishra, P. K. Parhi, and D. Das. 2021b. Sustainable transportation, leaching, stabilization, and disposal of fly ash using a mixture of natural surfactant and sodium silicate. ACS Omega 6 (35):22820–30. doi:10.1021/acsomega.1c03241.
  • Chandel, S., V. Seshadri, and S. N. Singh. 2009. Effect of additive on pressure drop and rheological characteristics of fly ash slurry at high concentration. Particulate Science and Technology 27 (3):271–84. doi:10.1080/02726350902922036.
  • Dan, A. K., D. Bhattacharjee, S. Ghosh, S. S. Behera, B. K. Bindhani, D. Das, and P. K. Parhi. 2021. Prospective utilization of coal fly ash for making advanced materials. In Clean coal technologies, ed. J. Rajesh Kumar and P. Pankaj Kumar, 511–31. Springer.
  • Das, D., U. Dash, J. Meher, and P. K. Misra. 2013. Improving stability of concentrated coal–water slurry using mixture of a natural and synthetic surfactants. Fuel Processing Technology 113:41–51. doi:10.1016/j.fuproc.2013.02.021.
  • Das, D., S. K. Das, P. K. Parhi, A. K. Dan, S. Mishra, and P. K. Misra. 2021. Green strategies in formulating, stabilizing and pipeline transportation of coal water slurry in the framework of WATER-ENERGY NEXUS: A state of the art review. Energy Nexus 4:100025. doi:10.1016/j.nexus.2021.100025.
  • Das, D., P. Kar, B. R. Das, R. K. Mohapatra, S. N. Das, P. K. Parhi, and U. Behera. n.d. Natural dispersant in coal water slurry stabilization. In Clean coal technologies: Beneficiation, utilization, transport phenomena and prospective, ed. J. Rajesh Kumar and P. Pankaj Kumar, 39–58. Springer.
  • Das, D., R. K. Mohapatra, P. K. Parhi, A. K. Sarangi, R. Sahu, and S. R. Barik. 2020. Sustainable and efficient route for the regeneration of carbonyl compounds from oximes using aqueous extract of Sapindus laurifolia under microwave radiation. ACS Omega 5 (13):7716–21. doi:10.1021/acsomega.0c00774.
  • Das, D., S. Pattanaik, P. K. Parhi, R. K. Mohapatra, R. K. Jyothi, J.-Y. Lee, and H. I. Kim. 2019. Stabilization and rheological behavior of fly ash–water slurry using a natural dispersant in pipeline transportation. ACS Omega 4 (25):21604–11. doi:10.1021/acsomega.9b03477.
  • Hashemi, S. A., K. C. Wilson, and R. S. Sanders. 2014. Specific energy consumption and optimum operating condition for coarse-particle slurries. Powder Technology 262:183–87. doi:10.1016/j.powtec.2014.04.021.
  • Li, L., H. Usui, and H. Suzuki. 2002. Study of pipeline transportation of dense fly ash-water slurry. Coal Preparation 22 (2):65–80. doi:10.1080/07349340210959.
  • Maroušek, J., A. Maroušková, T. Zoubek, and P. Bartoš. 2022. Economic impacts of soil fertility degradation by traces of iron from drinking water treatment. Environment Development and Sustainability 24 (4):4835–44. doi:10.1007/s10668-021-01636-1.
  • Mishra, S. K., and S. B. Kanungo. 2000. Factors affecting the preparation of highly concentrated coal-water slurry (HCCWS).
  • Misra, P. K., U. Dash, and P. Somasundaran. 2009. Effect of organized assemblies, part VII: Adsorption behavior of Polyoxyethylated Nonyl Phenol at Silica−Cyclohexane interface and its efficiency in stabilizing the Silica−Cyclohexane dispersion. Industrial & Engineering Chemistry Research 48 (7):3403–09. doi:10.1021/ie801283f.
  • Misra, P. K., B. K. Mishra, and P. Somasundaran. 2003. Organization of amphiphiles: V. in situ fluorescence probing of the adsorbed layers of polyoxyethylated alkyl phenols at silica–water interfaces. Journal of Colloid and Interface Science 265 (1):1–8. doi:10.1016/S0021-9797(03)00234-0.
  • Misra, P. K., B. K. Mishra, and P. Somasundaran. 2005. Organization of amphiphiles: Part IV. Characterization of the microstructure of the adsorbed layer of decylethoxylene nonyl phenol. Colloids and Surfaces A: Physicochemical and Engineering Aspects 252 (2–3):169–74. doi:10.1016/j.colsurfa.2004.08.076.
  • Mohapatra, R. K., D. Das, U. Behera, S. N. Das, A. Mohanty, A. Mahal, and M. M. El-Ajaily. 2021. Generation of fly ash and its surface modification for pipeline transportation. Chemical Modification of Solid Surfaces by the Use of Additives 94:94–109.
  • Pattanaik, S., P. K. Parhi, D. Das, and A. K. Samal. 2019. Acacia concinna: A natural dispersant for stabilization and transportation of fly ash-water slurry. Journal of the Taiwan Institute of Chemical Engineers 99:193–200. doi:10.1016/j.jtice.2019.03.020.
  • Routray, A., P. K. Senapati, M. Padhy, and D. Das. 2019. Effect of mixture of natural and synthetic surfactant and particle size distribution for stabilized high-concentrated coal water slurry. International Journal of Coal Preparation & Utilization 42 (3):238–53. doi:10.1080/19392699.2019.1592166.
  • Singh, K. P., A. Kumar, and D. R. Kaushal. 2019. Pressure drop calculation for fly ash slurry using rheological model. World Journal of Engineering 16 (6):751–67. doi:10.1108/WJE-03-2019-0086.
  • Singh, D. B., N. Kumar, D. R. Kaushal, A. K. Sharma, and J. K. Yadav. 2021. Effect of solid concentration and grain size on the rheology of fly ash slurries. Materials Today: Proceedings 46:10904–08. doi:10.1016/j.matpr.2021.02.003.
  • Vochozka, M., J. Horak, T. Krulick\`y, and P. Pardal. 2020. Predicting future Brent oil price on global markets. Acta Montanistica Slovaca 25:375–392.
  • Vochozka, M., Z. Rowland, P. Suler, and J. Marousek. 2020. The INFLUENCE of the INTERNATIONAL PRICE of OIL on the VALUE of the EUR/USD EXCHANGE RATE. Journal of Competitiveness 12 (2):167–90. doi:10.7441/joc.2020.02.10.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.